Ferronematic Co(II) Complex: An Active Filler for Magnetically Actuated Soft Materials

Author:

Damoc Madalin1ORCID,Tiron Vasile2,Tugui Codrin1,Varganici Cristian‐Dragos3,Stoica Alexandru‐Constantin1,Novitchi Ghenadie4,Dascalu Mihaela1,Cazacu Maria1ORCID

Affiliation:

1. Department of Inorganic Polymers “Petru Poni” Institute of Macromolecular Chemistry Aleea Gr. Ghica Voda 41A Iasi 700487 Romania

2. Research Center on Advanced Materials and Technologies Department of Exact and Natural Sciences Institute of Interdisciplinary Research Alexandru Ioan Cuza University of Iasi Blvd. Carol no. 11 Iasi 700506 Romania

3. Centre of Advanced Research in Bionanoconjugates and Biopolymers “Petru Poni” Institute of Macromolecular Chemistry Aleea Gr. Ghica Voda 41A Iasi 700487 Romania

4. Laboratoire National des Champs Magnétiques Intenses CNRS UPR 3228 25 Rue des Martyrs Grenoble 38042 France

Abstract

AbstractFerronematics that are generally based on nematic liquid crystals (LCs) doped with magnetic nanoparticles, synergistically taking advantage of the anisotropic and flow characteristics of the nematic host and the magnetic susceptibility of the dopant, have powerful applications as magnetically actuated soft materials. In this work, a Co(II) complex, which alone presents both characteristics, is built with a salen‐type ligand 3,5‐dichlorosubstituted at the aromatic nuclei and has a tetramethyldisiloxane spacer, which makes it one of the few metallomesogens containing this structural motif. Paramagnetic crystals, through heat treatment above 110 °C, change into magnetic nematic LCs. Applying a perpendicular magnetic field of 50 mT, the nematic droplets align two by two through dipole–dipole interactions. By incorporating it into a silicone matrix consisting mainly of polydimethylsiloxane, a 3D printable ink is formulated and crosslinked under various shapes. In this environment, the cobalt complex is stabilized in an LC state at room temperature and, due to its anisotropy, facilitates the mechanical response to magnetic stimuli. The resulting objects can be easily manipulated on fluid or rough surfaces using external magnetic fields, behave like magnets by themselves, and show reversible locomotion.

Funder

Ministerul Cercetării, Inovării şi Digitalizării

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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